Unit-1
Linear differential equations
A homogeneous linear ordinary differential equation with constant coefficients is an ordinary differential equation in which coefficients are constants, all terms are linear, and the entire differential equation is equal to zero,
The form of second-order linear differential equation with constant coefficients is,
Where a,b,c are the constants.
Let, aD²y+bDy+cy = f(x), where d² = 
, D = 
∅(D)y = f(x) , where ∅(D)y = aD²y+bDy+cy
Here first we solve, ∅(D)y = 0, which is called complementary function(C.F)
Then we find particular integral (P.I)
P.I. = 
f(x)
General solution = C.F. +P.I.
Linear differential equations are those in which the independent variable and its derivative occur only in the first degree and are not multiplied together.
Thus the general linear differential equation of the nth order is of the form
Where 
and X isa function of x.
Linear differential equation with constant coefficient is of the form-
Where 
are constants.
Let’s do some examples to understand the concept,
Example1: Solve (4D² +4D -3)y = 
Solution: Auxiliary equation is 4m² +4m – 3 = 0
We get, (2m+3)(2m – 1) = 0
m = 
, 
complementary function: CF is A
+ B
now we will find particular integral,
P.I. = 
f(x)
= 
. 
= 
. 
= 
. 
= 
. 
= 
. 
General solution is y = CF + PI
= A
+ B
. 
Differential operators
D stands for operation of differential i.e.
stands for the operator of integration.
stands for operation of integration twice.
Thus, 
Note:-Complete solution = complementary function + Particular integral
i.e. y=CF + PI
Rules to find the complementary function-
To solve the equation-
This can be written as in symbolic form-
Or-
It is called the auxiliary equation.
Let 
be the roots-
Case-1: If all the roots are real and distinct, then equation (2) becomes,
Now this equation will be satisfied by the solution of 
This is a Leibnitz’s linear and I.F. = 
Its solution is-
The complete solution will be-
Case-2: If two roots are equal 
Then the complete solution is given by-
Case-3: If one pair of roots be imaginary, i.e. 
then the complete solution is-
Where 
and 
Case-4: If two points of imaginary roots are equal-
Then the complete solution is-
Example-Solve 
Sol.
Its auxiliary equation is-
Where-
Therefore the complete solution is-
Example: Solve 
Ans. Given, 
Here the Auxiliary equation is
Example: Solve
Or,
Ans. Auxiliary equation is
Note: If roots are in complex form i.e. 
Example: Solve 
Ans. Auxiliary equation is
Rules to find Particular Integral
Case 1: 
If, 
If, 
Example:Solve
Ans. Given, 
Auxiliary equation is 
Case2: 
Expand 
by the binomial theorem in ascending powers of D as far as the result of an operation on 
is zero.
Example.
Given, 
For CF,
Auxiliary equation is
For PI
Case 3: 
Or,
Example:
Ans. Auxiliary equation is
Case 4: 
Example: Solve 
Ans. AE= 
The complete solution is 
Example: Solve 
Ans. The AE is 
Complete solution y= CF + PI
Example: Solve 
Ans. The AE is 
Complete solution = CF + PI
Example: Solve
Ans. The AE is 
Complete solutio0n is y= CF + PI
Example: Find the PI of 
Ans. 
Example: solve
Ans. Given equation in symbolic form is
Its Auxiliary equation is 
Complete solution is y= CF + PI
Example: Solve
Ans. The AE is 
We know, 
Complete solution is y= CF + PI
Example: Find the PI of(D2-4D+3)y=ex cos2x
Ans. 
Example. Solve(D3-7D-6) y=e2x (1+x)
Ans. The auxiliary equation i9s
Hence complete solution is y= CF + PI
Key takeaways-
2. General solution = C.F. +P.I.
3. If all the roots are real and distinct, then
4. If two roots are equal 
then
5. If one pair of roots be imaginary, i.e. 
then the complete solution is-
6. If two points of imaginary roots are equal-
Then the complete solution is-
A general method of finding the PI of any function 
Or
Or
It is the LDE.
The solution will be-
Example:
Solve 
Solution:
Auxiliary equation 
Complementary function 
Complete Solution is 
Example:
Solve 
Solution:
Auxiliary equation 
C.F is 
[
]
The Complete Solution is 
Example
Solve 
Solution:
The Auxiliary equation is 
The C.F is 
P.I 
The Complete Solution is 
Example
Solve 
Solution:
The Auxiliary equation is 
The C.F is
P.I 
Now, 
The Complete Solution is
Example
Solve 
Solution:
The auxiliary equation is 
The C.F is 
[Put 
]
The Complete Solution is 
Example
Solve 
Solution:
The auxiliary equation is 
The C.F is
But 
The Complete Solution is 
Example
Solve 
Solution:
The auxiliary equation is
The C.F is
[By parts]
The Complete Solution is 
Example
Solve 
Solution:
The auxiliary equation is
The C.F is
Now, 
And 
The Complete Solution 
Consider a second-order LDE with constant coefficients given by
Then let the complimentary function 
is given by
Then the particular integral is
Where u and v are unknown and to be calculated using the formula
u=
Example-1: Solve the following DE by using a variation of parameters-
Sol. We can write the given equation in symbolic form as-
To find CF-
It’s A.E. is 
So that CF is- 
To find PI-
Here 
Now 
Thus PI = 
= 
= 
= 
= 
So that the complete solution is-
Example-2: Solve the following by using the method of variation of parameters.
Sol. This can be written as-
C.F.-
The auxiliary equation is- 
So that the C.F. will be- 
P.I.-
Here 
Now 
Thus PI = 
= 
= 
So that the complete solution is-
Where, 
are constant is called Cauchy’s homogenous linear equation.
Put, 
Example.
Ans. Putting, 
AE is 
CS = CF + PI
Example: Solve 
Ans. Let, 
AE is 
y= CF + PI
Example: Solve 
Ans. Let, 
so that z = log x
AE is 
Legendre’s differential equation-
A differential equation of the form-
Where k is the constants and X is a function of x, is known as Legendre’s linear differential equation.
We can reduce such type of equations to linear equations with constant coefficient by the substitution as-
i.e.
Example: Solve 
Sol. As we see that this is Legendre’s linear equation.
Now put 
So that- 
And 
Then the equation becomes- D (D – 1)y+ Dy + y = 2 sin t
Its auxiliary equation is- 
And particular integral-
P.I. = 
Note - 
Hence the solution is - 
Key takeaways-
2. Legendre’s linear differential equation-
The equation involving the derivatives of two or more dependent variables, which are the functions of a single independent variable, is called a simultaneous equation.
Such as-
Example 1: Solve the following simultaneous differential equations-
....(2)
Solution:
Consider the given equations
....(2)
Consider eq(1),(2)
Dx+2y = et....(1)
Dx +2x =e-t....(2)
Eliminating ‘x’ from both the equations we get,
1
2
2Dx + 2y = 2et
D 
2Dx +D2y = e-t
y = Ae2t + Be-2t + 
Example 2: Solve the following simultaneous differential equations-
Given that x(0)=1 and y(0)= 0
Solution:
Consider the given equations,
Dy +2x = sin2t
Dx -2y = cos2t
By solving the above equations we get,
(D2 +4)Y =0
X(0) = 1, y(0) = 0
A =0, B=-1
Example-3: Solve the following simultaneous differential equations-
It is given that x = 0 and y = 1 when t = 0.
Sol. Given equations can be written as-
Dx + 2y = - sin t ………. (1) and -2x + Dy = cos t ……… (2)
Eliminate x by multiplying (1) by 2 and (2) by D then add-
Here A.E = 
So that C.F. = 
And P.I. = 
So that- 
…………. (3)
And 
………….. (4)
Substitute (3) in (2), we get-
2x = Dy – cos t = 
………… (5)
When t = 0, x = 0, y = 1. (3) and (5) gives- 
Hence 
References
1. Erwin Kreyszig, Advanced Engineering Mathematics, 9thEdition, John Wiley & Sons, 2006.
2. N.P. Bali and Manish Goyal, A textbook of Engineering Mathematics, Laxmi Publications.
3. Higher engineering mathematic, Dr. B.S. Grewal, Khanna publishers
